Nonlinear vortex-induced vibration dynamics of a flexible pipe conveying two-phase flow

In this article, a vortex-induced vibration prediction model of a flexible riser conveying two-phase flow, including geometric and hydrodynamic nonlinearity, is established. A van der Pol wake oscillator is utilized to characterize the fluctuating lift forces. The finite element method is chosen to...

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Main Authors: Wenwu Yang, Xueping Chang, Ruyi Gou
Format: Article
Language:English
Published: SAGE Publishing 2019-10-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/1687814019881924
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spelling doaj-34462408f11c4a868a700b6381426f772020-11-25T03:49:38ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402019-10-011110.1177/1687814019881924Nonlinear vortex-induced vibration dynamics of a flexible pipe conveying two-phase flowWenwu YangXueping ChangRuyi GouIn this article, a vortex-induced vibration prediction model of a flexible riser conveying two-phase flow, including geometric and hydrodynamic nonlinearity, is established. A van der Pol wake oscillator is utilized to characterize the fluctuating lift forces. The finite element method is chosen to solve the coupled nonlinear fluid–structure interaction equations. The natural frequencies of the flexible riser are calculated to validate the method through comparisons with results from the literature. The modal analyses show that geometric nonlinearity has a significant effect on the natural frequency, and the critical internal velocity is reduced than those in linear analyses. The impacts of the gas volume fraction as functions of cross-flow velocity on the synchronization region, the displacement amplitudes, and the maximum stresses and frequency spectra have been investigated. The results show that an increase in the gas fraction results in the linear increase in natural frequencies and a wider synchronization region, and an increase in liquid flow rate led to the slight decrease in displacement amplitude and maximum stress within a small flow range.https://doi.org/10.1177/1687814019881924
collection DOAJ
language English
format Article
sources DOAJ
author Wenwu Yang
Xueping Chang
Ruyi Gou
spellingShingle Wenwu Yang
Xueping Chang
Ruyi Gou
Nonlinear vortex-induced vibration dynamics of a flexible pipe conveying two-phase flow
Advances in Mechanical Engineering
author_facet Wenwu Yang
Xueping Chang
Ruyi Gou
author_sort Wenwu Yang
title Nonlinear vortex-induced vibration dynamics of a flexible pipe conveying two-phase flow
title_short Nonlinear vortex-induced vibration dynamics of a flexible pipe conveying two-phase flow
title_full Nonlinear vortex-induced vibration dynamics of a flexible pipe conveying two-phase flow
title_fullStr Nonlinear vortex-induced vibration dynamics of a flexible pipe conveying two-phase flow
title_full_unstemmed Nonlinear vortex-induced vibration dynamics of a flexible pipe conveying two-phase flow
title_sort nonlinear vortex-induced vibration dynamics of a flexible pipe conveying two-phase flow
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8140
publishDate 2019-10-01
description In this article, a vortex-induced vibration prediction model of a flexible riser conveying two-phase flow, including geometric and hydrodynamic nonlinearity, is established. A van der Pol wake oscillator is utilized to characterize the fluctuating lift forces. The finite element method is chosen to solve the coupled nonlinear fluid–structure interaction equations. The natural frequencies of the flexible riser are calculated to validate the method through comparisons with results from the literature. The modal analyses show that geometric nonlinearity has a significant effect on the natural frequency, and the critical internal velocity is reduced than those in linear analyses. The impacts of the gas volume fraction as functions of cross-flow velocity on the synchronization region, the displacement amplitudes, and the maximum stresses and frequency spectra have been investigated. The results show that an increase in the gas fraction results in the linear increase in natural frequencies and a wider synchronization region, and an increase in liquid flow rate led to the slight decrease in displacement amplitude and maximum stress within a small flow range.
url https://doi.org/10.1177/1687814019881924
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AT xuepingchang nonlinearvortexinducedvibrationdynamicsofaflexiblepipeconveyingtwophaseflow
AT ruyigou nonlinearvortexinducedvibrationdynamicsofaflexiblepipeconveyingtwophaseflow
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